Uncovering the electrical synapse proteome in retinal neurons via in vivo proximity labeling.

Stephan Tetenborg, Eyad Shihabeddin, Elizebeth Olive Akansha Manoj Kumar, Crystal Sigulinsky, Karin Dedek, Ya-Ping Lin, Fabio Echeverry, Hannah Hoff, Alberto Pereda, Bryan William Jones, Christophe Ribelayga, Klaus Ebnet, Ken Matsuura, John O'Brien
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Abstract

Electrical synapses containing Connexin 36 (Cx36) represent the main means for communication in the mammalian nervous system. However, little is known about the protein complexes that constitute these synapses. In the present study, we applied different BioID strategies to screen the interactomes of Connexin 36 the major neuronal connexin and its zebrafish orthologue Cx35b in retinal neurons. For in vivo proximity labeling in mice, we took advantage of the Cx36-EGFP strain and expressed a GFP-nanobody-TurboID fusion construct selectively in AII amacrine cells. For in vivo BioID in zebrafish, we generated a transgenic line expressing a Cx35b-TurboID fusion under control of the Cx35b promoter. Both strategies allowed us to capture a plethora of molecules that were associated with electrical synapses and showed a high degree of evolutionary conservation in the proteomes of both species. Besides known interactors of Cx36 such as ZO-1 and ZO-2 we have identified more than 50 new proteins, such as scaffold proteins, adhesion molecules and regulators of the cytoskeleton. Moreover, we determined the subcellular localization of these proteins in AII amacrine and tested potential binding interactions with Cx36. Amongst these new interactors, we identified signal induced proliferation associated 1 like 3 (SIPA1L3), a protein that has been implicated in cell junction formation and cell polarity as a new scaffold of electrical synapses. Interestingly, SIPA1L3 was able to interact with ZO-1, ZO-2 and Cx36, suggesting a pivotal role in electrical synapse function. In summary, our study provides the first detailed view of the electrical synapse proteome in retinal neurons, which is likely to apply to electrical synapses elsewhere.

通过体内接近标记揭示视网膜神经元的电突触蛋白质组。
经过几十年的研究,我们已经对神经系统中化学突触的功能和调节的蛋白质复合物有了全面的了解。尽管已经确定了ZO-1或CaMKII等关键分子,但我们目前对电突触蛋白质组缺乏类似水平的了解。随着BioID作为体内蛋白质组学工具的进步,通过将酶促生物素化与随后的链亲和素亲和力捕获相结合,已经有可能识别特定蛋白质的复杂相互作用组。在本研究中,我们应用不同的BioID策略来筛选视网膜神经元中连接蛋白36(小鼠)及其斑马鱼同源物Cx35b的相互作用组。为了在小鼠体内进行接近标记,我们利用Cx36-EGFP菌株,在AII amacrine细胞中选择性地表达了GFP-nanobody-TurboID融合结构。对于斑马鱼体内的BioID,我们在Cx35b启动子的控制下产生了表达Cx35b- turboid融合的转基因系。这两种策略都使我们能够捕获大量与电突触相关的分子,并在两个物种的蛋白质组中显示出高度的进化守恒。除了已知的Cx36相互作用物(如ZO-1和ZO-2)外,我们还鉴定了50多种新蛋白,如支架蛋白、粘附分子和细胞骨架调节因子。我们进一步确定了这些蛋白在AII amacrine中的亚细胞定位,并测试了与Cx36的潜在结合相互作用。值得注意的是,我们发现了信号诱导增殖相关的1 like 3 (SIPA1L3),这是一种作为电突触的新支架,与细胞连接形成和细胞极性有关的蛋白质。有趣的是,SIPA1L3能够与ZO-1、ZO-2和Cx36相互作用,这表明SIPA1L3在电突触功能中起关键作用。总之,我们的研究提供了视网膜神经元中电突触蛋白质组的第一个详细视图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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